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Journal Club – Music and Neuroscience Lab
Ana Luísa Pinho
3rd
of June, 2022
2 / 12
Outline
●
“Show me the data.” = Show me the results.
●
Between raw data and results, we have the analysis.
●
Results reflect data indirectly, through the lens of the
analysis based on assumptions.
●
Ideally, no distortion caused by analysis and assumptions.
3 / 12
The problem
●
Results shall reflect an aspect of the data filtered by the
assumption (left).
●
Results are predetermined by assumptions, the analysis
is circular.
●
Assumptions modify the results (center).
●
Assumptions tinge the results (right)
4 / 12
Selection Criteria
●
Selection criteria is the most frequent reason for
distortion of results.
●
“Double Dipping”: using the same data for selection and
selective analysis
●
Data = true effects + noise, therefore selection is
affected by noise
●
Selection criteria is only valid when results are
statistically independent of the selection criteria under
the null hypothesis.
5 / 12
Identifying the problem in the
literature: study overview
●
All fMRI studies from 2008 published in 5 journals were
examined.
●
Journals: Nature, Science, Nature Neuroscience, Neuron and
Journal of Neuroscience
●
Total: 134 papers
●
42% (57 papers) contained at least one non-independent
selective analysis
6 / 12
Identifying the problem in the
literature: conclusions
●
Disclaimer: in many cases, the overall claim did not
depend directly on the distorted result.
●
Yet, the problem is frequent and compromises
transparency.
●
The problem is frequent because the desired solution
criterion is often related to the desired results in the
selective analysis.
7 / 12
Identifying the problem in the
literature: take-home messages
●
Open-science and reproducibility
●
In neuroimaging:
– Whole-brain mapping that avoids selective bias
should be preferred.
– In-depth ROI analysis: use a different different dataset
for the selective analysis
– Use an ROI from a different study (e.g. meta-analysis)
to conduct the selective analysis
8 / 12
Demonstration of the problem
●
Widely accepted neuroimaging methods applied
to random data:
– Example 1: Pattern-information analysis
– Example 2: Regional-activation analysis
9 / 12
Example 2:
Regional Activation Analysis (1/2)
10 / 12
Example 2:
Regional Activation Analysis (2/2)
11 / 12
Example 1:
Pattern-Information Analysis
12 / 12
Policy for noncircular analysis

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Circular Analysis in Neuroscience

  • 1. 1 / 12 Journal Club – Music and Neuroscience Lab Ana Luísa Pinho 3rd of June, 2022
  • 2. 2 / 12 Outline ● “Show me the data.” = Show me the results. ● Between raw data and results, we have the analysis. ● Results reflect data indirectly, through the lens of the analysis based on assumptions. ● Ideally, no distortion caused by analysis and assumptions.
  • 3. 3 / 12 The problem ● Results shall reflect an aspect of the data filtered by the assumption (left). ● Results are predetermined by assumptions, the analysis is circular. ● Assumptions modify the results (center). ● Assumptions tinge the results (right)
  • 4. 4 / 12 Selection Criteria ● Selection criteria is the most frequent reason for distortion of results. ● “Double Dipping”: using the same data for selection and selective analysis ● Data = true effects + noise, therefore selection is affected by noise ● Selection criteria is only valid when results are statistically independent of the selection criteria under the null hypothesis.
  • 5. 5 / 12 Identifying the problem in the literature: study overview ● All fMRI studies from 2008 published in 5 journals were examined. ● Journals: Nature, Science, Nature Neuroscience, Neuron and Journal of Neuroscience ● Total: 134 papers ● 42% (57 papers) contained at least one non-independent selective analysis
  • 6. 6 / 12 Identifying the problem in the literature: conclusions ● Disclaimer: in many cases, the overall claim did not depend directly on the distorted result. ● Yet, the problem is frequent and compromises transparency. ● The problem is frequent because the desired solution criterion is often related to the desired results in the selective analysis.
  • 7. 7 / 12 Identifying the problem in the literature: take-home messages ● Open-science and reproducibility ● In neuroimaging: – Whole-brain mapping that avoids selective bias should be preferred. – In-depth ROI analysis: use a different different dataset for the selective analysis – Use an ROI from a different study (e.g. meta-analysis) to conduct the selective analysis
  • 8. 8 / 12 Demonstration of the problem ● Widely accepted neuroimaging methods applied to random data: – Example 1: Pattern-information analysis – Example 2: Regional-activation analysis
  • 9. 9 / 12 Example 2: Regional Activation Analysis (1/2)
  • 10. 10 / 12 Example 2: Regional Activation Analysis (2/2)
  • 11. 11 / 12 Example 1: Pattern-Information Analysis
  • 12. 12 / 12 Policy for noncircular analysis